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Trifolium

Ageratum mexicanum. Copaifera Salikounda. Trifolium MelUoius. Antkoxanthum odoratum. [Pg.272]

Stein-kem, m. stone (in fruit, in burnt lime), -kitt, m. cement for stone, -klee, m. melilot (Melilotua, esp. M. officinalia) white clover (Trifolium repena). -kohle, /. mineral coal, coal. [Pg.427]

Atwood, S. S. and Sullivan, J. T. 1943. Inheritance of a cyanogenic glycoside and its hydrolyzing enzyme in Trifolium repens. J. Heredity 34 311-320. [Pg.302]

Daday, H. 1954a. Gene frequencies in wild populations of Trifolium repens.. Distribution by lattitude. Heredity 8 61-78. [Pg.309]

Dawson, C. D. R. 1941. Tetrasomic inheritance in Lotus corniculatus L. J. Genetics 42 49-72. de Araujo, A. M. 1976. The relationship between altitude and cyanogenesis in white clover (Trifolium repens L.). Heredity 37 291-293. [Pg.309]

Gibson, P. B., Barnett, J. T. and Gillingham, J. T. 1972. Cyanoglucoside and hydrolyzing enzyme in species related to Trifolium repens. Crop Sci. 12 708-709. [Pg.313]

Kakes, P. and Chardonnens, A. N. 2000. Cyanotypic frequencies in adjacent and mixed populations of Trifolium occidentale Coombe and Trifolium repens L. are regulated by different mechnisms. Biochem. Syst. Ecol. 28 633-649. [Pg.318]

Saucy, F., Studer, J., Aerni, V. and Schneiter, B. 1999. Preference for acyanogenic white clover Trifolium repens) in the vole Arvicola terrestris I. experiments with two varieties. J. Chem. Ecol. 25 1441-1454. [Pg.328]

Plazinski, J. and Rolfe, B.G.. 1985. Analysis of pectinolytic activity of Rhizohhim and Azospirillum strains isolated from Trifolium repens. J. Plant Physiol. 120, 181-187. [Pg.384]

Rhizobia. Taxa belonging to both the genera Rhizobium and Bradyrhizobium are capable of degrading simple aromatic compounds including benzoate (Chen et al. 1984) and 4-hydroxy-benzoate (Parke and Omston 1986 Parke et al. 1991). It has been shown that 4-hydroxyben-zoate hydroxylase is required for the transport of 4-hydroxybenzoate into the cell (Wong et al. 1994). In strains of Rhizobium trifolium, the metabolism of benzoate involves either 3,4-dihydroxybenzoate (protocatechuate) 3,4-dioxygenase (Chen et al. 1984), or catechol... [Pg.66]

Dihydroxyflavone Root exudate Trifolium repens R. legiiminosarum... [Pg.9]

M. G. Nair, G. R. Safir, and J. O. Siqueira, Isolation and identification of vascular-arbuscular mycorrhiza-stimulatory compounds from clover (Trifolium repens) roots. AppL Environ. Microbiol. 57 434 (1991). [Pg.84]

S. E. Smith, B. L. St John, F. A. Smith, and D. j. D. Nicholas, Activity of glutamine synthetase and glutamate dehydrogenase in Trifolium subterraneum and Allium cepa L., effects of mycorrhizal infection and phosphorus nutrition. New Phytologist 99 211 (1985). [Pg.131]

L. Marilley and M. Aragno, Phylogenetic diversity of bacterial communities differing in degree of proximity of Lolium perenne and Trifolium repens roots. Applied Soil Ecology 73 127 (1999). [Pg.195]

In marked contrasts to the flavonoids, the isoflavonoids have a very limited distribution in the plant kingdom and are almost entirely restricted to the subfamily Papilionoidae. Their estrogenic effect was discovered following the observation of a decline in birth rate for sheep fed on Trifolium sublerraneum. Changes in... [Pg.198]

S. U. Saratchandra, G. Burch, and N. R. Cox, Growth patterns of bacterial communities in the rhizoplane and rhizosphere of white clover (Trifolium repens L.) and... [Pg.321]

Glasshouse Elevated COi mycorrhizal status ver Trifolium repens) Loblolly pine Pmus taeda) 85... [Pg.382]

Trifolium alexandrinum Hyparrhenia filipendula, fungi and bacteria of T. alexandrinum antagonistic and stim. to R. japonicum a + 106... [Pg.311]

Mahdihassan, S. Trifolium design as the igsignia of Trismegistus, in Egypt, Mesopotamia and Mohenjodaro. SindQ 1, no. 1 (1975) 27-34. [Pg.432]

Blank G, Goswami N, Madrid F, Marquardt R R and Frohlich A A (1995), Evaluation of Trifolium castaneum (Herbst) (Coleoptera Tenebrionidae) excreta on ochratoxin production in stored wheat , J. Stored Products Res., 31, 151-155. [Pg.383]

Like alfalfa, the clover family (Trifolium spp.) consists of perennial legume plants that fix their own nitrogen. However, they suffer several limitations as general production crops for molecular farming, such as restricted perenniality, low protein content and the presence of high levels of condensed tannins which interfere with protein extraction. Despite these disadvantages, clovers are forage crops and are there-... [Pg.195]

Klejdus B, Vitamvasova D and Kuban V. 2001. Identification of isoflavone conjugates in red clover (Trifolium pratense) by liquid chromatography-mass spectrometry after two-dimensional solid-phase extraction. Anal Chim Acta 450 81-97. [Pg.151]


See other pages where Trifolium is mentioned: [Pg.31]    [Pg.109]    [Pg.272]    [Pg.25]    [Pg.26]    [Pg.26]    [Pg.28]    [Pg.309]    [Pg.604]    [Pg.652]    [Pg.117]    [Pg.121]    [Pg.174]    [Pg.310]    [Pg.324]    [Pg.36]    [Pg.273]    [Pg.288]    [Pg.293]    [Pg.264]    [Pg.226]    [Pg.321]    [Pg.184]    [Pg.195]    [Pg.329]    [Pg.171]   
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Clover (Trifolium spp

Clover Trifolium

Cyanogenesis in Clover (Trifolium, Fabaceae)

Red clover (Trifolium pratense

Subterranean clover (Trifolium

Subterranean clover (Trifolium subterraneum

Trifolium alexandrinum

Trifolium arvense

Trifolium aureum

Trifolium fragiferum

Trifolium hybridum

Trifolium incamatum

Trifolium medium

Trifolium officinale

Trifolium pratense

Trifolium pratense L.

Trifolium pratense repens

Trifolium pretense

Trifolium repens

Trifolium species

Trifolium spp.

Trifolium subterranean

Trifolium subterraneum

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